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Hydrophilicity and carbon chain length effects on the gas sensing properties of chemoresistive self-assembled monolayer carbon nanotube sensors

机译:亲水性和碳链长度对化学阻滞自组装单层碳纳米管传感器的气体传感性能的影响

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摘要

Here we describe the development of chemoresistive sensors employing oxygen-plasma-treated, Au-decorated multiwall carbon nanotubes (MWCNTs) functionalized with self-assembled monolayers (SAMs) of thiols. For the first time, the effects of the length of the carbon chain and its hydrophilicity on the gas sensing properties of SAMs formed on carbon nanotubes are studied, and additionally, the gas sensing mechanisms are discussed. Four thiols differing in the length of the carbon chain and in the hydrophobic or hydrophilic nature of the head functional group are studied. Transmission electron microscopy, Raman spectroscopy and X-ray photoelectron spectroscopy are used to analyze the resulting gas-sensitive hybrid films. Among the different nanomaterials tested, short-chain thiols having a hydrophilic head group, self-assembled onto Au-decorated carbon nanotubes were most responsive to nitrogen dioxide and ethanol vapors, even in the presence of ambient humidity. In particular, this nanomaterial was about eight times more sensitive to nitrogen dioxide than bare Au-decorated carbon nanotubes when operated at room temperature. This response enhancement is attributed to the interaction, via strong hydrogen bonding, of the polar molecules tested to the polar surface of hydrophilic thiols. The approach discussed here could be extended further by combining hydrophilic and hydrophobic thiol SAMs in Au-MWCNT sensor arrays as a helpful strategy for tuning sensor response and selectivity. This would make the detection of polar and nonpolar gas species employing low-power gas sensors easier, even under fluctuating ambient moisture conditions.
机译:在这里,我们描述了使用具有硫醇自组装单层(SAMs)功能的氧等离子体处理,金装饰的多壁碳纳米管(MWCNT)的化学电阻传感器的发展。首次研究了碳链长度及其亲水性对在碳纳米管上形成的SAM的气敏特性的影响,并探讨了其气敏机理。研究了碳链长度和头部官能团的疏水性或亲水性不同的四种硫醇。透射电子显微镜,拉曼光谱和X射线光电子能谱用于分析所得的气敏杂化膜。在测试的不同纳米材料中,即使在环境湿度存在的情况下,自组装在Au修饰的碳纳米管上的具有亲水头基的短链硫醇对二氧化氮和乙醇蒸气的响应也最强。特别地,当在室温下操作时,该纳米材料对二氧化氮的敏感性比裸金装饰的碳纳米管高约八倍。该响应增强归因于被测极性分子与亲水性硫醇极性表面的相互作用,通过强氢键结合。通过在Au-MWCNT传感器阵列中结合亲水和疏水硫醇SAM,可以进一步扩展此处讨论的方法,作为调整传感器响应和选择性的有用策略。即使在波动的环境湿度条件下,这也将使使用低功率气体传感器的极性和非极性气体种类的检测更加容易。

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